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NUMERICAL ANALYSIS ON HYDRAULIC POWER TAKE-OFF FOR WAVE ENERGY CONVERTER AND POWER SMOOTHING METHODS

机译:波能变换器液压动力下降数值分析及电力平滑方法

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One of the primary challenges for wave energy converter (WEC) systems is the fluctuating nature of wave resources, which require the WEC components to be designed to handle loads (i.e., torques, forces, and powers) that are many times greater than the average load. This approach requires a much greater power take-off (PTO) capacity than the average power output and indicates a higher cost for the PTO. Moreover, additional design requirements, such as battery storage, are needed, particularly for practical electrical grid connection, and can be a problem for sensitive equipment (e.g., radar, computing devices, and sensors). Therefore, it is essential to investigate potential methodologies to reduce the overall power fluctuation while trying to optimize the power output from WECs. In this study, a detailed hydraulic PTO model was developed and coupled with a time-domain hydrodynamics model (WEC-Sim) to evaluate the PTO efficiency for WECs and the trade-off between power output and fluctuation using different power smoothing methods, including energy storage, pressure relief mechanism, and a power-based setpoint control method. The study also revealed that the maximum power fluctuation for WECs can be significantly reduced by one order of magnitude when these power smoothing methods are applied.
机译:波能转换器(WEC)系统的主要挑战之一是波浪资源的波动性质,这需要WEC组件来设计用于处理多次大于平均值的负载(即扭矩,力和力)加载。这种方法需要比平均功率输出更大的功率起飞(PTO)容量,并指示PTO的成本更高。此外,需要额外的设计要求,例如电池存储,特别是对于实用电网连接,并且可能是敏感设备(例如雷达,计算设备和传感器)的问题。因此,必须研究潜在的方法,以减少整体功率波动,同时尝试优化WECs的电力输出。在该研究中,开发了一种详细的液压PTO模型并与时域流体动力学模型(WEC-SIM)相结合,以评估WECS的PTO效率和使用不同功率平滑方法的功率输出和波动之间的折衷,包括能量储存,压力释放机制和基于功率的设定点控制方法。该研究还透露,当应用这些电力平滑方法时,WECs的最大功率波动可以显着减少一种级级。

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